US5830729A - I Sce I-induced gene replacement and gene conversion in embryonic stem cells - Google Patents
I Sce I-induced gene replacement and gene conversion in embryonic stem cells Download PDFInfo
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- US5830729A US5830729A US08/693,948 US69394896A US5830729A US 5830729 A US5830729 A US 5830729A US 69394896 A US69394896 A US 69394896A US 5830729 A US5830729 A US 5830729A
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Classifications
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/435—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
- C07K14/46—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates
- C07K14/47—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates from mammals
- C07K14/4701—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates from mammals not used
- C07K14/4735—Villin
Definitions
- I-Sce I a very rare cutter endonuclease has been shown to initiate DSB in the mammalian genome, while its random integration allowed new insights into the analysis of recombination mechanisms in mammals.
- the effect of DSB on DNA repair and homologous recombination frequency is assessed after cotransfer of an I-Sce I expressing vector and of a villin replacement vector in the targeted ES cells (FIG. 1).
- FOG. 1 the effect of DSB on DNA repair and homologous recombination frequency is assessed after cotransfer of an I-Sce I expressing vector and of a villin replacement vector in the targeted ES cells. 1).
- FIG. 1 Strategy for the induction of gene conversion and gene replacement upon DSB repair in the natural villin locus.
- A Gene targeting of the I-SceI restriction site in the villin locus by homologous recombination
- B Co-transfection of the pI-SceI expression plasmid and of the replacement construct conferring hygromycine resistance. Resulting recombinants represent gene conversion events, with return to the wild-type genotype, or homologous gene replacement in the villin locus.
- FIG. 2 Southern blot analysis of gene targeting of the I-SceI restriction site in the villin locus. Experiments were performed as described in ref X. (A). Targeting of the I-SceI restriction site in the villin locus of CK35 ES cells. Genomic DNAs of ES WT and ES59 clone were digested with (lanes 2 and 4) or without (lanes 1 and 3) the I-SceI meganuclease, followed by ScaI digestion and probed with A (0.4 kb BamHI-HincII, 3' external probe). The 7.5 kb band represents the targeted allele that resulted in a 4.5 kb band when digested by I-SceI.
- FIG. 3 Southern blot analysis showing homozygotization of the targetted villin locus after I-SceI meganuclease expression.
- A Genomic DNAs of ES WT, ES59, ES348 and ES345 clones were digested with ScaI and probed with B (0.8 kb SmaI-HindIII, internal probe).
- B 0.8 kb SmaI-HindIII, internal probe.
- the 4.0 kb band represents the I-SceI-neo targeted allele that resulted in a 3.0 kb band after I-SceI expression, due to reversion to a WT genotype by gene convertion.
- FIGS. 4A-4C Gene replacement of the I-SceI targeted villin locus after I-SceI meganuclease expression
- A Genomic DNAs of ES WT, ES59, ES321 and ES323 clones were digested with BglI and probed with C (0.5 kb BglII-StuI, 5' external probe) and D (3 kb, lacZ probe).
- C 0.5 kb BglII-StuI, 5' external probe
- D 3 kb, lacZ probe
- ES 59 clone was then used in the second step. Double-strand breaks were induced by I-Sce I digestion after transient transfection of the ES cells with an expression vector for I-Sce I meganuclease (pI-Sce I). Cotransfection of these vectors was performed with the gene replacement construct pvillin-LacZ (ref methods). ES clones were selected for Hygromycine resistance and subsequently screened for neomycine sensitivity in order to recover clones which undergo modification of the I-SceI-Neo allele. Results obtained in different experimental conditions are illustrated on table 1.
- I-Sce I endonuclease is actually able to cleave its site in vivo at the villin locus and that this stimulates the loss or the inactivation of the Neo gene from the I-Sce I-targeted villin allele.
- the predominant repair mechanism of site directed DSB at the villin locus in a mitotic cell line is an interchromosomal gene conversion.
- This allelic conversion results in the homozygotization of the villin locus, indicating that the unbroken wild-type locus is used as a repair matrix for the broken chromosome.
- Gene conversion after induction of a DSB has been observed in yeast and in Drosophila Fairhead, 1993 #13; Mezard, 1994 #14; Shulman, 1995 #15!.
- interchromosomal recombination has been previously reported to be suppressed in somatic cells Shulman, 1995 #13; Godwin, 1994 #16!.
- Induction of specific DSB in a natural locus in mice derived from I-SceI targeted ES cells should also allow homozygotization of any endogenous locus in various somatic cells in vivo. Such homozygotization could be controlled either spatially or temporally, by the use of appropriate regulatory sequences to direct I-SceI meganuclease expression. This may help to understand the functional significance of gene polymorphisms and genomic imprinting, for example, in higher eucaryotes.
- I-Sce I in mammalian cells is apparently non-toxic.
- villin-lacZ allele appeared to be expressed normally in a cell specific way: indeed, in keeping with the known expression of villin in the visceral endoderm cells of the implanting embryo and of EC derived embryoid bodies, we could show by immunolocalization that ⁇ -gal and villin colocalized in and were restricted to the endoderm cells of the embryoid bodies derived from ES clone 321 (see FIG. 4, panel D). This demonstrates that the nls-lacZ gene is actually under the control of the villin regulatory sequences. Chimeric animals (50-80% chimerism) have been obtained after microinjection of ES 321 cells in blastocysts. Crosses are underway to test germ line transmission of the targeted ES cells.
- the I-Sce I meganuclease system is not a recombinase system.
- I-Sce I does not control the formation and the resolution of DNA synapsis but relies on the endogenous cellular repair machinery.
- the recombination process induced by I-Sce I is irreversible since the I-Sce I recognition site is not restored after recombination allowing stable integration of foreign sequences, a process that is not possible using the the Cre-loxP system.
- I-Sce I restriction site was introduced in a unique Xho I site flanking the 5' end of the Neo resistance gene (pMCl, Stratagene) using an oligodimer (sens oligo; antisens oligo), disrupting the Xho I site.
- This I-Sce I/Neo gene was introduced in a unique Kpn I site present in a 6 kb BamHI fragment isolated from a ⁇ DASHII phage containing 16 kbp of the mouse villin gene (kind furnished by G. Tremp, ROR) and subcloned in pBS/KS+.
- the 1.2 kb DT-A cDNA (kindly provided by S.
- Tashbak was subcloned in the unique Xho I site flanking the 5' end of the construct 2.
- 10 7 CK35 ES cells were electroporated with 20 ⁇ g of the Pvu I-linearized targeting construct.
- G418 300 ⁇ g/ml was added 36 hours after plating.
- G418-resistant clones were isolated and their genotype analysed by Southern blot.
- a 5' 2 kb BamH I-Nco I villin gene fragment (located upstream of the initiation codon) was subcloned in front of the nlsLacZ coding sequences (kindly furnished by Sharagim).
- a 3'1.6 kb Hind III-Xba I villin gene fragment was subcloned downstream of the PGK-Hygromycin resistance gene (kindly given by S. Memet).
- the Hygro- 3' villin fragment was then subcloned in the unique Spe I site downstream of the 5' villin-nlsLacZ construct.
- the supercoiled pI-Sce I expression plasmid () and the pvillin nlsLacZ replacement construct were electroporated into ES 59 cells following the different conditions summarized in table 1.
- Hygromycin 150 ⁇ g/ml was added 36 hours after plating for 6 days.
- Mitomycine-C-treated G418 R primary fibroblasts were added three times during the selection period.
- Hygromycine-resistant ES clones were isolated and amplified in ES medium. Duplicate cultures were prepared to screen for G418-sensitive and Hygromycin-resistant ES clones.
- 10 6 ES cells were plated in sterile Petri dishes in 10 ml of culture medium (DMEM, 10% FCS,) without LIF nor ⁇ -mercaptoethanol. The majority formed aggregates floating in the medium 6-10 days after plating, embryoid bodies were collected for subsequent analysis. After fixation with paraformaldehyde ?%, embryoid bodies were embedded in x% gelatin and cutted in & uM sections. Immunocytochemistry were performed using a polyclonal villin antibody () and a ⁇ -gal xx antibody ().
- European Patent 419 621 (B1) and European Patent Applications: 682,111 (A1) and 682,112 (A1) concerning the "Knock in” method.
- This invention thus relates to the transfection of ES cells by a plasmid containing a construct comprising the villin gene (human or murine) in which is inserted a nucleotide sequence recognized by the restriction enzyme I-Sce I.
- the ES cells are able to be later transfected by a plasmid containing the gene coding for the enzyme I-Sce I, itself recombinant.
- Any eukaryotic cells or cell line, which will be transfected by a plasmid containing the villin gene or a part of the cDNA coding for the villin protein and the nucleotide sequence recognized by the I-Sce I restriction enzyme, is a part of the invention.
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Abstract
Description
TABLE 1
______________________________________
Number and genotype of independent ES clones isolated
in different experiments (E 1-3).
Ratio of pI-Sce I/pvillLacZ used for ES cell transfection and
sensitivity to selection markers are indicated.
Ratio
pI-Sce I/ HygroR Allelic
Gene
pvill-LacZ HygroR NeoS convertion
replacement
______________________________________
E1 1/1 80 8 8 0
pvill-LacZ
excised
E2 6/1 56 36 36 0
pvill-LacZ
excised
E3 10/1 55 24 17 4
pvill-LacZ
supercoiled
______________________________________
Claims (8)
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US08/693,948 US5830729A (en) | 1996-04-18 | 1996-08-07 | I Sce I-induced gene replacement and gene conversion in embryonic stem cells |
| US09/116,834 US6566579B1 (en) | 1996-04-18 | 1998-07-17 | I-Sce I induced gene replacement and gene conversion in embryonic stem cells |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US63419296A | 1996-04-18 | 1996-04-18 | |
| US08/693,948 US5830729A (en) | 1996-04-18 | 1996-08-07 | I Sce I-induced gene replacement and gene conversion in embryonic stem cells |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US63419296A Continuation | 1996-04-18 | 1996-04-18 | |
| US08/684,192 Continuation US5760497A (en) | 1995-07-28 | 1996-07-19 | Charge pump circuit with multiple boost stages |
Related Child Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US09/116,834 Continuation US6566579B1 (en) | 1996-04-18 | 1998-07-17 | I-Sce I induced gene replacement and gene conversion in embryonic stem cells |
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| US5830729A true US5830729A (en) | 1998-11-03 |
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|---|---|---|---|
| US08/693,948 Expired - Lifetime US5830729A (en) | 1996-04-18 | 1996-08-07 | I Sce I-induced gene replacement and gene conversion in embryonic stem cells |
| US09/116,834 Expired - Lifetime US6566579B1 (en) | 1996-04-18 | 1998-07-17 | I-Sce I induced gene replacement and gene conversion in embryonic stem cells |
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| WO2000046386A3 (en) * | 1999-02-03 | 2000-12-14 | Childrens Medical Center | Gene repair involving the induction of double-stranded dna cleavage at a chromosomal target site |
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| CA2968440A1 (en) | 2014-11-21 | 2016-05-26 | Regeneron Pharmaceuticals, Inc. | Methods and compositions for targeted genetic modification using paired guide rnas |
| BR112017013104A2 (en) | 2014-12-19 | 2018-05-15 | Regeneron Pharmaceuticals, Inc. | methods for modifying a target genomic locus in a cell, for enhancing homologous recombination at a target genomic locus in a cell, and for producing an f0 generation from a nonhuman animal. |
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